Preview

Topical biotechnology

Advanced search

ИММОБИЛИЗАЦИЯ ФЕРМЕНТОВ НА ГЕТЕРОГЕННЫХ НОСИТЕЛЯХ, СОДЕРЖАЩИХ МАГНИТНЫЕ НАНОЧАСТИЦЫ: КЛЮЧЕВЫЕ ФАКТОРЫ, ВЛИЯЮЩИЕ НА ПРОИЗВОДИТЕЛЬНОСТЬ БИОКАТАЛИЗАТОРА

https://doi.org/10.20914/2304-4691-2022-1-35-39

About the Authors

В. Матвеева
ФГБО ВО «Тверской государственный технический университет»
Russian Federation


А. Сульман
ФГБО ВО «Тверской государственный технический университет»
Russian Federation


О. Гребенникова
ФГБО ВО «Тверской государственный технический университет»
Russian Federation


Ю. Косивцов
ФГБО ВО «Тверской государственный технический университет»
Russian Federation


В. Долуда
ФГБО ВО «Тверской государственный технический университет»
Russian Federation


References

1. Wang, D. ; et al.Growing Field of Magnetically Recyclable Nanocatalysts. // Chem. Rev. 2014. Vol. 114. P. 6949-6985.

2. Asmat, S. ; Husain, Q. A robust nanobiocatalyst based on high performance lipase immobilized to novel synthesised poly(o- toluidine) functionalized magnetic nanocomposite: Sterling stability and application. // Mater. Sci. Eng., C. 2019. Vol. 99. P. 25-36.

3. Lawson, B.P et al. Insights into Sustainable Glucose Oxidation Using Magnetically Recoverable Biocatalysts. //ACS Sustainable Chem. Eng. 2018. Vol.

4. Jaquish, R. et al. Immobilized glucose oxidase on magnetic silica and alumina: Beyond magnetic separation. // Int. J. Biol. Macromol. 2018. Vol. 120. P. 896-905.

5. Gennari, A. et al. Immobilization of β-Galactosidases on Magnetic Nanocellulose: Textural, Morphological, Magnetic, and Catalytic Properties. // Biomacromolecules. 2019. Vol.

6. Krishnan, B.P. ; Prieto-Lopez, L.O. ; Hoefgen, S. ; Xue, L. ; Wang, S. ; Valiante, V. ; Cui, J. Thermomagneto-Responsive Smart Biocatalysts for Malonyl-Coenzyme A Synthesis. //ACS Appl. Mater. Interfaces. 2020. Vol. 12. P. 20982-20990.

7. Suo, H. ; Xu, L. ; Xue, Y. ; Qiu, X. ; Huang, H. ; Hu, Y. Ionic liquids-modified cellulose coated magnetic nanoparticles for enzyme immobilization: Improvement of catalytic performance. // Carbohydr. Polym. 2020, Vol. 234. P. 115914.

8. Haskell, A.K et al. Glucose Oxidase Immobilized on Magnetic Zirconia: Controlling Catalytic Performance and Stability. //ACS Omega. 2020. Vol.

9. Bilal, M. ; Zhao, Y. ; Rasheed, T. ; Iqbal, H.M.N. Magnetic nanoparticles as versatile carriers for enzymes immobilization: A review. // Int. J. Biol. Macromol. 2018. Vol.

10. Yang, Z. ; Si, S. ; Zhang, C. Magnetic single-enzyme nanoparticles with high activity and stability. // Biochem. Biophys. Res. Commun. 2008. Vol. 367. P. 169-175.

11. Shen, J. ; Qiao, J. ; Qi, L. Thermoresponsive Porous Polymer Membrane as a Switchable Enzyme Reactor for D-Amino Acid Oxidase Kinetics Study. //ACS Appl. Bio Mater. 2021. Vol.

12. Shin, M et al.. Synthesis of Fe3O4@nickel-silicate core-shell nanoparticles for His-tagged enzyme immobilizing agents. // Nanotechnology. 2016. Vol. 27. P. 495705/495701-495705/495709.

13. Lin, C. ; Xu, K. ; Zheng, R. ; Zheng, Y. Immobilization of amidase into a magnetic hierarchically porous metal-organic framework for efficient biocatalysis. // Chem Commun (Camb). 2019. Vol. 55. P. 5697-5700.

14. Wang, J. ; et al.Lipase Immobilized on a Novel Rigid-Flexible Dendrimer-Grafted Hierarchically Porous Magnetic Microspheres for Effective Resolution of (R, S) -1-Phenylethanol. //ACS Appl. Mater. Interfaces. 2020. Vol. 12. P. 4906-4916.

15. de, L.J.M. ; Furlani, I.L. ; da, S.L.R.G. ; Valverde, A.L. ; Cass, Q.B. Micro -and nano-sized amine-terminated magnetic beads in a ligand fishing assay. // Anal Methods. 2020. Vol. 12. P. 4116-4122.

16. Francolini, I. ; Taresco, V. ; Martinelli, A. ; Piozzi, A. Enhanced performance of Candida rugosa lipase immobilized onto alkyl chain modified-magnetic nanocomposites. // Enzyme Microb Technol. 2020. Vol. 132. P. 109439.

17. Suo, H. ; Gao, Z. ; Xu, C. ; Yu, D. ; Xiang, X. ; Xu, L. ; Huang, H. ; Hu, Y. Synthesis of functional ionic liquid modified magnetic chitosan nanoparticles for porcine pancreatic lipase immobilization. // Mater Sci Eng C Mater Biol Appl. 2019. Vol. 96. P. 356-364.


Review

For citations:


 ,  ,  ,  ,   . Topical biotechnology. 2022;(1):35-39. (In Russ.) https://doi.org/10.20914/2304-4691-2022-1-35-39

Views: 35


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 2304-4691 (Print)